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Non-IID Quantum Federated Learning with One-shot Communication Complexity

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arxiv 2209.00768 v2 pith:FPNWTBKT submitted 2022-09-02 quant-ph cs.DCcs.LGstat.ML

classification quant-phcs.DCcs.LGstat.ML
keywords federatedlearningquantumdatanon-iidalgorithmsclientscommunication
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Federated learning refers to the task of machine learning based on decentralized data from multiple clients with secured data privacy. Recent studies show that quantum algorithms can be exploited to boost its performance. However, when the clients' data are not independent and identically distributed (IID), the performance of conventional federated algorithms is known to deteriorate. In this work, we explore the non-IID issue in quantum federated learning with both theoretical and numerical analysis. We further prove that a global quantum channel can be exactly decomposed into local channels trained by each client with the help of local density estimators. This observation leads to a general framework for quantum federated learning on non-IID data with one-shot communication complexity. Numerical simulations show that the proposed algorithm outperforms the conventional ones significantly under non-IID settings.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. LLM-QFL: Distilling Large Language Model for Quantum Federated Learning

    cs.LG 2025-05 reject novelty 4.0 of 10

    LLM-QFL uses locally fine-tuned LLMs as controllers to reduce communication rounds and adapt optimizer steps in quantum federated learning.

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